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      Fundamentals of Power System Economics

      AvDaniel S. Kirschen,Goran Strbac

      Inbunden, Engelska, 2026

      1 434 kr

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      “Where economic theory meets the physics of electricity—everything you need to understand why power markets are unlike any other.” —Jesse Jenkins, Princeton University “Fundamentals of Power System Economics caters to a wide diversity of students; it can speak to economists and engineers alike.” —François Bouffard, McGill University “Perfectly bridges principles of economics with the power system.”—Chongqing Kang, Tsinghua University Understand competitive electricity markets in a decarbonizing energy landscape Designing successful electricity markets requires mastery of both power systems engineering and market economics. Now in its third edition, Fundamentals of Power System Economics explains competitive market principles while contrasting them against the monopoly model as a reference framework. Written by two leading researchers in power system economics, this new edition addresses markets where carbon-free generation predominates. This edition adds coverage of decarbonization economics, government market interventions, and market clearing with high renewable penetration. New material addresses transmission investment cost allocation, generation investment challenges in energy-only markets, and system operator tools including SCED and SCUC. A new chapter on retail markets covers prosumer interactions, flexible consumers, and energy equity. The book also includes: Reorganized structure covering fundamental principles, short-term operational economics, and long-term investment economics across three distinct partsDetailed analysis of wholesale market structures including demand-side bidding mechanisms and examples showing different renewable generation proportionsCoverage of transmission network integration with system operator responsibilities and optimal power flow methodologies explained in monopoly contextsDiscussion of retail electricity tariffs for residential and commercial consumers alongside emerging prosumer business models and flexibility servicesExtensive end-of-chapter exercises and discussion points designed to reinforce concepts and enhance understanding of complex market dynamicsDesigned for graduate and undergraduate students in electrical and power engineering, this book serves power system engineers, operators, planners, and policymakers working in deregulated environments. Fundamentals of Power System Economics provides the analytical foundation needed to navigate electricity markets during the transition to low-carbon generation.

      Produktinformation

      • Utgivningsdatum:2026-05-21
      • Mått:260 x 29 x 174 mm
      • Vikt:975 g
      • Format:Inbunden
      • Språk:Engelska
      • Antal sidor:384
      • Upplaga:3
      • Förlag:John Wiley & Sons Inc
      • ISBN:9781394333028

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      Utforska kategorier

      • Energiindustri inom Ekonomi och Ledarskap
      • Energiteknik inom Naturvetenskap och teknik
      • Klassisk mekanik inom Naturvetenskap och teknik

      Mer om författaren

      DANIEL S. KIRSCHEN, PHD, is the Donald W. and Ruth Mary Close Professor of Electrical and Computer Engineering at the University of Washington, USA. A Fellow of the IEEE and the Chinese Society for Electrical Engineering, his research focuses on renewable energy integration, power system economics, and grid resilience. He previously taught at The University of Manchester, UK, and developed utility control center software for Control Data and Siemens. GORAN STRBAC, PHD, is Professor of Energy Systems at Imperial College London, UK, with extensive experience in modelling and analysis of operation, planning, security and economics of energy systems. He led the development of novel analysis methods that have been extensively used to inform industry, governments and regulatory bodies about the role and value of emerging technologies in supporting a cost effective transition to a resilient low carbon energy future.

      Innehållsförteckning

      • Preface to the Third Edition xvPreface to the Second Edition xviiPreface to the First Edition xixNomenclature xxiAbout the Companion Website xxiii1 Introduction 11.1 Why Study Power System Economics? 11.2 Industry Structure 11.2.1 Vertically Integrated Monopoly Utility 21.2.2 The Dawn of Competition 31.2.3 Introducing Independent Power Producers 41.2.4 Wholesale Competition 41.2.5 Retail Competition 51.2.6 Incorporating Distributed Energy Resources 61.3 Dramatis Personae 61.4 Competition and Privatization 81.5 Experience and Open Questions 81.6 Problems 10Further Readings 112 Concepts from Economics 132.1 Introduction 132.2 Fundamentals of Markets 132.2.1 Modeling the Consumers 132.2.1.1 Individual Demand 132.2.1.2 Surplus 142.2.1.3 Demand and Inverse Demand Functions 152.2.1.4 Price Elasticity of Demand 172.2.2 Modeling the Producers 182.2.2.1 Opportunity Cost 182.2.2.2 Supply and Inverse Supply Functions 182.2.2.3 Producers’ Revenue 202.2.2.4 Price Elasticity of Supply 212.2.3 Market Equilibrium 212.2.4 Pareto Efficiency 232.2.5 Global Welfare and Deadweight Loss 242.2.6 Time-Varying Prices 252.3 Concepts from the Theory of the Firm 252.3.1 Inputs and Outputs 252.3.2 Long Run and Short Run 262.3.3 Costs 282.3.3.1 Short-Run Costs 282.3.3.2 Long-Run Costs 302.3.3.3 Opportunity Costs 322.4 Risk 322.5 Types of Markets 332.5.1 Spot Market 332.5.2 Forward Contracts and Forward Markets 342.5.3 Future Contracts and Futures Markets 352.5.4 Options 362.5.5 Contracts for Difference 372.5.6 Managing the Price Risks 382.5.7 Market Efficiency 382.6 Markets with Imperfect Competition 392.6.1 Market Power 392.6.2 Monopoly 402.7 Regulation 402.7.1 Goals of Regulation 412.7.2 Traditional Regulation 422.7.3 Drawbacks of Traditional Regulation 432.8 Externalities 432.9 Role of Government 442.10 Problems 45Further Readings 51Reference 513 Economic Operation in a Vertically Integrated Environment 533.1 Introduction 533.2 Short-Run Characteristics of the Demand for Electrical Energy 533.3 Short-Run Characteristics of the Generation of Electrical Energy 553.3.1 Thermal Generation 553.3.2 Wind and Solar Generation 563.3.3 Hydro Generation 563.4 Short-Run Characteristics of Energy Storage Systems 573.5 Economic Dispatch 573.5.1 Mathematical Formulation 573.5.2 Economic Dispatch Considering Unit Limits 603.5.3 Interpretation of the Lagrange Multipliers 633.5.4 Economic Dispatch Using Piecewise Linear Cost Curves 643.6 Load Flexibility and Storage 673.7 Unit Commitment 683.7.1 Mathematical Formulation 693.7.2 Solving the Unit Commitment Problem 703.7.3 Handling Uncertainty 733.8 Problems 76Further Readings 794 Structure of Wholesale Markets for Electrical Energy 814.1 What Makes an MWh a Unique Commodity? 814.2 Trading Periods 824.3 Forward Markets 834.3.1 Bilateral or Decentralized Trading 834.3.2 Centralized Trading 874.3.2.1 Principles of Centralized Trading 874.3.2.2 Day-ahead Forward Market 924.3.2.3 Formulation as an Optimization Problem 924.3.2.4 Market-Clearing Price 944.3.2.5 Recovering the Fixed Costs 954.3.3 Comparison of Centralized and Decentralized Trading 984.4 Spot Market 994.4.1 Obtaining Balancing Resources 1004.4.2 Gate Closure 1024.4.3 Operation of the Spot Market 1024.4.4 Interactions Between the Spot Market and the Forward Markets 1044.4.5 Virtual Bidding 1044.5 The Settlement Process 1054.6 Problems 107Further Readings 1155 Participating in Markets for Electrical Energy 1175.1 Introduction 1175.2 The Consumer’s Perspective 1175.3 The Retailer’s Perspective 1185.4 The Producer’s Perspective 1255.4.1 Perfect Competition 1255.4.1.1 Optimal Dispatch 1255.4.1.2 Scheduling 1285.4.1.3 Forecasting Errors 1295.4.1.4 Cogeneration Plants 1295.4.1.5 Ancillary Services 1295.4.2 Imperfect Competition 1305.4.2.1 Bertrand Model 1305.4.2.2 Cournot Model 1315.4.2.3 Factors That Facilitate the Exercise of Market Power 1345.4.2.4 Supply Functions Equilibria 1375.4.2.5 Agent-Based Modeling 1385.4.2.6 Experimental Economics 1395.4.2.7 Limitations of These Models 1395.5 Perspective of Plants that Do Not Burn Fossil Fuels 1395.5.1 Nuclear Power Plants 1405.5.2 Hydroelectric Power Plants 1405.5.3 Wind and Solar Generation 1415.5.3.1 Intermittency and Stochasticity 1415.5.3.2 Effect on the Markets 1415.6 The Storage Owner’s Perspective 1425.6.1 Self-Scheduling 1425.6.2 Centralized Market 1435.7 The Flexible Consumer’s Perspective 1465.7.1 Flexible Demand vs. Storage 1465.7.2 Remunerating Flexible Demand 1465.7.3 Implementation Issues 1475.8 The Neighbor’s Perspective 1525.9 An Overall Market Perspective 1525.9.1 Clearing the Market 1525.9.2 Default Price and Price Cap 1565.9.3 Exercising Market Power 1565.9.4 Mitigating Market Power 1575.10 Problems 158Further Reading 161References 1616 Integrating Wholesale Electricity Markets and Transmission Networks 1636.1 Introduction 1636.2 Decentralized Trading over a Transmission Network 1636.2.1 Physical Transmission Rights 1646.2.2 Issues with Physical Transmission Rights 1656.3 Centralized Trading over a Transmission Network 1686.3.1 Centralized Trading in a Two-Bus System 1686.3.1.1 Unconstrained Transmission 1696.3.1.2 Constrained Transmission 1716.3.1.3 Congestion Surplus 1736.3.2 Centralized Trading in a Three-Bus System 1756.3.2.1 Economic Dispatch 1766.3.2.2 Correcting the Economic Dispatch 1786.3.2.3 Nodal Prices 1816.3.2.4 Congestion Surplus 1846.3.2.5 Economically Counterintuitive Flows 1856.3.2.6 Economically Counterintuitive Prices 1856.3.2.7 More Economically Counterintuitive Prices 1876.3.2.8 Nodal Pricing and Market Power 1886.3.2.9 A Few Additional Comments on Nodal Marginal Prices 1906.3.3 Losses in Transmission Networks 1906.3.3.1 Types of Losses 1906.3.3.2 Marginal Cost of Losses 1916.3.3.3 Effect of Losses on Generation Dispatch 1926.3.3.4 Merchandising Surplus 1936.3.3.5 Combining Losses and Congestion 1946.3.3.6 Handling of Losses under Bilateral Trading 1956.3.4 Mathematical Formulation of Nodal Pricing 1956.3.4.1 Network with a Single Busbar 1966.3.4.2 Network of Infinite Capacity with Losses 1966.3.4.3 Network of Finite Capacity with Losses 1986.3.4.4 Network of Finite Capacity, DC Power Flow Approximation 1996.3.4.5 AC Modeling 2036.3.5 Managing Transmission Risks in a Centralized Trading System 2036.3.5.1 The Need for Network-Related Contracts 2036.3.5.2 Financial Transmission Rights 2046.3.5.3 Point-to-Point Financial Transmission Rights 2066.3.5.4 Flowgate Rights 2096.4 Problems 210Further Reading 216References 2167 Power System Operation 2177.1 Introduction 2177.2 Operational Reliability 2177.2.1 The Value of Reliability 2187.2.2 The Cost of Reliability 2187.2.3 Procuring Reliability Resources 2207.3 Operational Issues 2217.3.1 Balancing Issues 2217.3.1.1 Load/Generation Balance 2217.3.1.2 Balancing Resources 2237.3.2 Network Issues 2277.3.2.1 Limits on Power Transfers 2277.3.2.2 Voltage Control and Reactive Support 2297.3.2.3 Other Stability Resources 2337.3.3 System Restoration 2337.3.4 Market Models vs. Operational Models 2347.4 Obtaining Reliability Resources 2347.4.1 Compulsory Provision 2347.4.2 Market for Reliability Resources 2357.4.3 System Balancing with a Significant Proportion of Variable Renewable Generation 2367.4.4 Creating a Level-Playing Field 2377.5 Buying Reliability Resources 2387.5.1 Quantifying the Needs 2387.5.2 Remunerating Reliability Resources 2397.5.2.1 Co-optimization of Energy and Reserve in a Centralized Day-ahead Market 2397.5.2.2 Operational Reserve Demand Curve (ORDC) 2477.5.3 Allocation of Transmission Capacity Between Energy and Reserve 2487.5.4 Allocating the Costs 2527.5.4.1 Who Should Pay for Reserve? 2537.5.4.2 Who Should Pay for Regulation and Load Following? 2537.6 Selling Reliability Resources 2547.7 Problems 258Further Reading 261References 2628 Investing in Generation and Other Resources 2638.1 Introduction 2638.2 Assessing the Profitability of Generating Plants 2638.2.1 Building New Generation Capacity 2638.2.2 Retiring Generation Capacity 2708.2.3 Cyclical Demand and Peak Price Hours 2718.2.4 Variable Renewable Generation 2768.2.5 Energy Storage 2778.2.6 Levelized Cost of Energy 2778.2.7 Production Costing Models 2788.2.8 System Integration Cost 2798.3 Generation Adequacy 2798.3.1 Assessing Generation Adequacy 2808.3.2 Generation Adequacy in Energy-only Markets 2818.3.3 Capacity Payments 2828.3.4 Capacity Markets 2828.3.5 Strategic Reserve 2838.3.6 Operating Reserve Demand Curve (ORDC) 2848.3.7 Reliability Contracts 2848.3.8 Long-Term Contracts 2858.4 Supporting Investments in Renewable Generation 2858.5 Integrated Resources Planning (IRP) 2868.6 Problems 287Further Readings 289Reference 2899 Investing in Transmission 2919.1 Introduction 2919.2 The Nature of the Transmission Business 2929.2.1 Rationale for a Transmission Business 2929.2.2 Transmission Is a Natural Monopoly 2929.2.3 Ownership Models 2929.2.4 Transmission Is a Capital-Intensive Business 2939.2.5 Transmission Assets Have a Long Life 2939.2.6 Transmission Investments Are Irreversible 2939.2.7 Transmission Investments Are Lumpy 2939.2.8 Economies of Scale 2949.3 Calculating the Optimal Transmission Capacity 2949.3.1 The Arbitrage Value of Transmission 2949.3.2 The Transmission Demand Function 2969.3.3 The Transmission Supply Function 2979.3.4 Optimal Transmission Capacity 2989.3.5 Effect of Load Fluctuations 3019.3.6 Cost Recovery with Optimal Transmission Capacity 3049.3.7 Cost Recovery with Sub-optimal Transmission Capacity 3049.3.8 Economies of Scale 3079.3.9 Optimal Transmission Capacity in a Meshed Network 3099.4 Non-Wire Transmission Expansion 3149.5 Allocating the Cost of Transmission Expansion 3159.6 Other Sources of Value of Transmission 3199.6.1 Sharing Reserve 3199.6.2 Sharing Balancing Capacity 3229.6.3 Sharing Generation Capacity Margin 3229.7 Problems 32510 Retail Tariffs 32710.1 Introduction 32710.2 Theoretically Optimal Pricing 32710.2.1 Marginal Cost Pricing 32710.2.2 Paying for the Fixed Costs 32910.2.2.1 Equal Share for All Consumers 32910.2.2.2 Equal Share for All Consumers of the Same Class 32910.2.2.3 Share the Fixed Cost in Proportion to Each Consumer’s Annual Peak Demand 32910.2.2.4 Share the Fixed Cost in Proportion to Each Consumer’s Annual Energy Demand 33010.2.2.5 Sharing the Fixed Cost Based on Income 33010.2.2.6 Electricity Supply Infrastructure as a Public Good 33010.2.3 Incorporating the Externalities 33010.3 Conventional Pricing 33210.4 Refinements to Conventional Pricing 33210.4.1 Customer Classes 33310.4.2 Time-of-use Tariffs 33310.4.3 Critical Peak Pricing 33310.4.4 Social Tariffs 33310.4.5 Tiered Pricing 33310.4.6 Minimum Bill 33410.4.7 Demand Charges 33510.4.8 Peak Demand Limit 33610.4.9 Penalty for Low Power Factor 33610.5 Behind the Meter Generation 33610.6 Retailers 33710.7 Problems 338Further Reading 340Index 341
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